Kevin Chen, PhD
pec9@pitt.edu
Researchers in PIRL under the direction of Kevin Chen, PhD, engage in interdisciplinary research in optics science, nanomanufacturing, and applied photonics. PIRL has strong capabilities in laser instrument developments and also superiorly equipped with state-of-the-art commercial laser systems.
Photonics Instrumentation Developments: PIRL researchers have strong capabilities on developing highly sophisticate laser instruments with unique characteristics not available in commercial markets. Some examples include:
Fiber Lasers : our group have developed a number of high-power (1-50 nJ), femtosecond (30-200 fs) fiber lasers for 1.0- (Yb), 1.5- (Er), and 1.9-mm (Tm) doped fiber lasers capable of both soliton and dissipative soliton outputs.
Femtosecond Solid State Lasers : Our group have developed (and currently equipped) with ultra-short pulse (< 10 fs) Tunable, Ti-Sapphire laser with high output power.
Portable Solid State Lasers : Our group possesses unique capability on developing powerful ultra-compact solid state lasers for homeland security, medicine, and remote sensing applications. We have capability on developing compact YAG laser with >10 mJ and <1 ns pulse output with weight less than 1000 gram.
PIRL scientists also developed a number of cutting-edge sensing instruments. The instrumentation development is supported by state-of-the-art of simulation and CAD tools including COMSOL, OPTIWAVE, ZEMAX, SOLIDWORK, ANSYS, ALLEGRO, and CANDENCE. We developed customer software to for nonlinear fiber optics for high-power fiber laser design.Â
Scientific and engineering research in PIRL is also supported by state-of-the-art of commercial equipment. These include:
High-power coherent ultrafast laser system for research on optics science and laser manufacturing from nano-scale to macro-scale.
Sophisticate adaptive optical laser pulse and laser beam shaping tool for parallel laser processing and precise laser matter interaction control at femtosecond time-scale and nano-meter spatial scale.
Multi-axis high-precision motion control systems with better than 0.1-mm bi-directional repeatability (10-nm resolution) over 2 feet travel distance along all axes.
Fully automatic guided wave photonic measurement capability and lightwave chip bonding capability.
Deep UV excimer laser systems (>1-J/pulse) at both 193-nm and 248-nm for laser processing.
Multiple high-power YAG laser (sub-ns) with frequency double and triple output for laser induced breakdown spectroscopy, mid-IR generation, and spectroscopy studies.
Continuous wave Ti-sapphire laser system tunable from 700 nm to 1000 nm with 1-W output power.
800-W VCSEL pump lasers with fast switching time.
>500-W diode pump lasers for fiber laser development
18-W single frequency diode pump laser (Coherent Verdi-18)
Sophisticate spectroscopy equipment including multiple spectrometers for UV, visible, near-IR, and mid-IR measurement (200-nm to 10-mm). Si ICCD camera and InGaAs CCD camera are available for weak signal and IR imaging applications.
Customer-developed time-domain measurement for sub-fs pulse measurement at 1-mm, 1.5-mm, 1.9-mm, and 2.8-mm.
Together with world-leading medical experts from UPMC, PIRL research engages in endoscopic therapies and diagnostics research to determine cancer margins, to develop minimal invasive cardiovascular surgical procedures, and to improve outcome of kidney disease treatment.
PIRL has unique expertise on development and applications of radioactive micro-sources , which can be widely used for biomedical and homeland security applications.